FIELD OF THE INVENTION
[0001] The invention relates to the technical field of medical imaging, particularly in
percutaneous interventions.
STATE OF THE ART
[0002] During percutaneous treatment of vascular diseases, X-ray angiographic imaging is
used to guide the intervention procedure. Detailed information of the diseased vessel,
for example atherosclerotic plaque, is assessed by intravascular imaging modalities,
such as intravascular ultrasound (IVUS) or optical coherence tomography (OCT), during
the intervention procedure. Another example of an intravascular imaging modality is
intravascular fractional flow reserve (FFR) in which the pressure within the vessel
is measured during pullback. Current invention relates to all intravascular imaging
devices having a controlled pullback speed.
[0003] Intravascular imaging is performed during pullback of an intravascular device through
a vessel and produces a stack of images showing vessel cross sections.
[0004] With this imaging modality it is difficult to correlate the position of a particular
image with respect to its location in the vessel within an angiographic view. In practice
the physician looks for anatomical landmarks, for example bifurcations or a number
of side branches that can be recognized both on X-ray angiography and on the intravascular
images in order to correlate the information of both imaging modalities with each
other. However, this is time-consuming and prone to errors which might lead to not
optimal treatment of vessel diseases.
[0005] A solution to this problem is disclosed in US patent application published with number
US 2012/0059253. This document discloses a method of co-registration of intravascular images with
X-ray images by tracing the intravascular transducer, which is located on the tip
of the guide-wire, during pullback on X-ray fluoroscopy. This method has the disadvantage
that the patient has an additional X-ray exposure, since X-ray fluoroscopy is necessary
during the complete pullback of the intravascular device. During a percutaneous coronary
intervention procedure, for example, the length of the coronary artery of interest
can be up to 15 cm. With a motorized pullback speed of 0.5 mm/sec this would lead
to an additional X-ray exposure time of 5 min. Although X-ray exposure can be reduced
by means of ECG gated X-ray imaging, still the patient receives additional X-ray exposure.
Another disadvantage of this method is the limited accuracy of length assessment due
to foreshortening or out-of-plane magnification errors, which is important when choosing
the correct stent- and/or balloon-length during treatment of the vascular disease.
[0006] US patent n. 7,729,746 discloses a method in which the co-registration between X-ray and intravascular images
is performed by generation of a 3D reconstruction of the vessel based on two X-ray
angiographic projections. In order to perform the co-registration, two additional
X-ray fluoroscopic images are required in which the user identifies in each fluoroscopic
image the tip of the intravascular transducer. This results in a 3D point in space
which is used to perform the co-registration. This approach goes in the right direction
since the 3D reconstruction of the vessel of interest eliminates foreshortening and
out-of-plane magnification errors, although the incorrect assumption is made that
the centerline of the 3D model corresponds with the intravascular path in the vessel
during pullback. Furthermore, any errors in the 2D segmentation of the vessel within
the X-ray angiographic images will negatively influence the co-registration since
they directly affect the 3D reconstruction of the vessel and its resulting centerline.
Another disadvantage is that four additional X-ray images are required for this method
resulting in additional exposure to the patient.
[0007] A further disadvantage of the prior art is that the true imaging plane within the
space occupied by the intravascular electronics is not taken into consideration.
[0008] There's thus the need to improve the registration process of intravascular and angiographic
images to, at least partially, overcome the above drawbacks.
SUMMARY OF THE INVENTION
[0009] It is thus an object of the present invention to provide a method for registering
intravascular images that fits perfectly in an interventional procedure with a reduced
burden for the patient both in terms of X-ray and contrast agent exposure.
[0010] The invention reaches the aim with a method for co-registration of angiography and
intravascular images, which intravascular images are in the form of a sequence of
images obtained from an intravascular imaging device which is pulled back through
a vessel, the method comprising the following steps:
- a) generating a three-dimensional reconstruction of the trajectory of the intravascular
device within the vessel, either automatically or manually by fitting user indicated
points, from two or more bi-dimensional angiography images of such vessel which have
been obtained from different perspectives;
- b) determining a first position of an element of the device within the 3D reconstruction
of the trajectory;
- c) correlating the position of such element with a correspondent point in the reconstructed
trajectory during pull back;
- d) correlating each intravascular image of the sequence with a corresponding spatial
position within at least one of the bi-dimensional angiography images.
[0011] The co-registration can be performed after the intravascular pullback or just before
the intravascular pullback. The latter allows real time feedback of position of intravascular
image in the X-ray images during the intravascular pullback.
[0012] The angiography images are typically bi-dimensional X-ray images obtained with or
without contrast agents. Particularly, as there's no need to reconstruct the vessel
wall as well as the centerlines as in the prior art, such images can be obtained without
contrast agents, i.e. they can be so-called fluoroscopic images. The trajectory of
the intravascular device can be, in fact, advantageously reconstructed by following
the position of the wire of the catheter associated with the intravascular device
starting from the tip once in the start of examination position, hence no contrast
enhancement is necessary.
[0013] Typically, as one of the advantages of the method of the invention resides in the
fact that it can perfectly fit in the intervention procedure, one of the at least
two angiography images is preferably the same angiographic image (i.e. obtained with
a contrast agent) that is usually acquired during common catheterization laboratory
workflow of a percutaneous intervention procedure. This allows reducing X-ray exposure
to the patient. The second image, obtained from a different perspective, does not
require contrast agent and thus can advantageously be a fluoroscopic image.
[0014] The idea at the base of the invention is to perform co-registration by using the
3D reconstruction of the trajectory of the intravascular device, and not the 3D reconstruction
of the vessel, obtained from two angiography images in which the start of the 3D trajectory
of the intravascular device is the intravascular device itself and this will correspond
with the first intravascular image.
[0015] Furthermore, an accurate match with the true position of the intravascular imaging
plane with respect to its location as visible on fluoroscopy and/or angiography can
be obtained by using the technical specifications of the intravascular imaging device
used during the procedure. To such extent, the element of the device, whose first
position is determined within the 3D reconstruction of the trajectory to correlate
the position of the device in the reconstructed trajectory during pull back, can advantageously
be a marker or any position on proximal side or distal side of the device having a
known distance to the imaging plane of the intravascular device.
[0016] This means that co-registration can be automatically performed between angiography
imaging and intravascular imaging in a very easy and effective way for immediate use
during normal catheterization procedures. Furthermore, the co-registration is based
on the true 3D trajectory of the intravascular device resulting in a perfect length
assessment allowing accurate length measurement to support the clinician in appropriate
interventional treatment.
[0017] According to an improvement, a so called longitudinal image is shown wherein the
intravascular images acquired during pull back are stacked on each other along a longitudinal
line, the position of each intravascular image within the vessel being identified
by a marker on the line and a corresponding marker in the angiography image.
[0018] In a further improvement, the degree of perpendicularity of the acquired intravascular
images with reference to the vessel can be determined by calculating planes perpendicular
to the reconstructed trajectory and back projecting such planes on the angiography
image. Such degree of perpendicularity can be evaluated, for example, by comparing
the orientation of the planes perpendicular to the reconstructed trajectory with corresponding
planes perpendicular to the lumen boundary of the vessel on the angiography image.
The orientation of the planes perpendicular to the trajectory and to the lumen boundary
can be shown as markers in the form of segments on the angiography image. The degree
of perpendicularity can also be advantageously quantified using a colour-coded representation
on the angiography image. This allows to immediately correct possible overestimated
areas within the vessel.
[0019] The invention also relates to a computer product directly loadable into the memory
of a computer and comprising software code portions for performing the method as disclosed
above when the product is run on a computer.
[0020] According to another aspect, the invention relates to a system for registering angiography
and intravascular images of a vessel having processing means configured to perform
the method as disclosed above to register intravascular images with at least one angiographic
image.
[0021] Particularly the system comprises:
- an imaging apparatus for acquiring intravascular images of the vessel;
- means for storing and/or receiving at least two angiography images of the vessel;
- a combination device for registering the intravascular images with at least one of
the angiography images,
wherein the imaging apparatus comprises an intravascular device to be deployed in
the vessel to a start of examination location for acquiring images of the vessel when
pulling back such device from such location, said pulling back being performed at
a controlled speed through a motorized pulling element, the combination device being
adapted to perform the method according to the invention, for example by
- a) generating a three-dimensional reconstruction of the trajectory of the intravascular
device within the vessel from two or more bi-dimensional angiography images of such
vessel which have been obtained from different perspectives. The reconstructed trajectory
typically has a starting point related to the start of examination position of the
imaging device;
- b) determining a first position of an element of the device within the 3D reconstruction
of the trajectory, the element being, for example, a marker or any position on proximal
side or distal side of the device having a known distance to the imaging plane;
- c) correlating the position of such element with a correspondent point in the reconstructed
trajectory during pull back;
- d) correlating each intravascular image of the sequence with a corresponding spatial
position within at least one of the bi-dimensional angiography images.
[0022] According to an embodiment, the system can be provided in combination with an X-ray
apparatus for acquiring two or more bi-dimensional angiography images of a vessel
of a patient from different perspectives. The X-ray apparatus can be a dual arm X-ray
apparatus to acquire biplane angiography images or a single arm X-ray apparatus to
acquire single plane fluoroscopic and/or angiographic images.
[0023] Further improvements of the invention will form the subject of the dependent claims.
BRIEF DESCRIPTION OF THE DRAWINGS
[0024] The characteristics of the invention and the advantages derived therefrom will be
more apparent from the following description of non-limiting embodiments, illustrated
in the annexed drawings, in which:
Fig. 1 shows a schematic representation of an X-ray image in which an intravascular
device has been percutaneously inserted in the vessel;
Fig. 2 is a flowchart of the invention main steps in a first embodiment where co-registration
is performed after pullback;
Fig. 3 is a flowchart of the invention main steps in a second embodiment where co-registration
is performed before pullback, allowing visual feedback of position of intravascular
imaging device on x-ray during the pullback;
Fig. 4 shows how ECG signal can be used to match information on angiography images.
Fig. 5 shows the intravascular catheter wire on a fluoroscopic 2D X-ray image once
the intravascular transducer has been inserted;
Fig. 6 shows the same intravascular catheter wire as in Fig. 5 on an angiographic
2D X-ray image;
Fig. 7 shows the available information on the distance to the imaging plane with respect
to a position on proximal side or distal side of an intravascular transducer;
Fig. 8 shows the available information on the distance to the imaging plane with respect
to a marker proximal or distal to the imaging plane;
Fig. 9 shows the co-registration between IVUS and angiography. The bottom part of
the figure shows a so called longitudinal image, i.e. a view in which all the IVUS
frames are stack on each other and a cross section is made longitudinal.
Corresponding position of IVUS frame in longitudinal view and angiographic view are
visualized by markers. Arrow identifies the start of first IVUS frame and its position
in the angiographic image;
Fig. 10 shows an example of a visualization of a non perpendicular intravascular imaging
plane;
Fig. 11 shows an example of a visualization of a non perpendicular intravascular imaging
plane in case of mismatch in the 2D X-ray imaging viewing directions.
DETAILED DESCRIPTION OF A PREFERRED EMBODIMENT
[0025] The invention is particularly advantageous in image guidance during minimally invasive
cardiovascular interventions based on 2D angiographic film of X-ray images and it
will be mainly disclosed with reference to this field. Examples of such interventions
are percutaneous coronary interventions (PCI). Intravascular images can be obtained
with any kind of intravascular imaging modality during the intervention procedure
such as intravascular ultrasound (IVUS), optical coherence tomography (OCT) or fractional
flow reserve (FFR) which can have a controlled pullback speed. FFR will result in
a number of values representing the local pressure at each position during the pullback.
[0026] The co-registration can be performed after the intravascular pullback or just before
the intravascular pullback. The latter allows real time feedback of position of intravascular
image in the X-ray images during the intravascular pullback.
[0027] For accurate co-registration between intravascular and angiography, the true pullback
length during intravascular imaging is required from the angiography images. Since
angiography produces 2D images, length measurements are prone to errors due to foreshortening
and out-of-plane magnification effects. The true pullback length of intravascular
device is assessed by a 3D reconstruction of the catheter wire of the intravascular
device which is visible in two angiography images. By using the 3D reconstruction
of the intravascular catheter-path instead of the 3D centerline from the 3D reconstruction
of the vascular lumen, co-registration errors are avoided in tortuous vessel which
is common anatomy in coronary vessels.
[0028] Figure 1 is a schematic representation of an angiography image of a vessel with an
inserted intravascular device: due to tortuousity, the centerline of the vessel follows
a different route with reference to the position of the catheter wire.
[0029] With reference to the flowchart diagrams of Fig. 2 and 3, which respectively show
the workflow when co-registration is performed after or before pullback, the steps
of two embodiments of the invention are now described.
Step 1: Acquire two angiography images
[0030] The angiography images are typically bi-dimensional X-ray images obtained, with or
without contrast agents, when the intravascular device is in its start of examination
position, i.e. it has been placed in the vessel of interest to perform intravascular
imaging during pull back of the same. Any image device capable of providing 2D images
can be used for the purpose. For example a biplane or single plane angiographic system
can be used such as those manufactured, for example, by Siemens (Artis zee Biplane)
or Philips (Allura Xper FD). In case of a single arm X-ray system, one X-ray angiographic
image is used which shows the vessel of interest and the intravascular device which
is common during catheterization laboratory workflow of percutaneous coronary intervention.
The second X-ray image is a fluoroscopic image of the intravascular device inserted
in the vessel to avoid the use of additional contrast agent. In case of a dual arm
X-ray system, an additional fluoroscopic X-ray image is not necessary and the biplane
images are directly used to perform the 3D reconstruction of the catheter path.
Step 2: Indicate catheter path in the two angiography images
[0031] In both X-ray images (for example fluoroscopic and angiographic or biplane angiographic),
the catheter path is indicated starting at the intravascular transducer. In case of
a single X-ray system, the corresponding frame of the second X-ray image can be automatically
selected by matching the corresponding frame based on the ECG signal within the first
X-ray image. This is achieved by detection of the length of the cardiac cycle, for
example as disclosed in "
A novel method for detecting R-peaks in electrocardiogram (ECG) signal" M. Sabarimalai,
K.P. Soman, Biomedical Signal Processing and Control (2011), doi:10.1016/j.bspc.2011.03.004. Next a percentage is calculated within the cardiac
cycle corresponding to the frame of the first X-ray image. In the second X-ray image
a frame is selected with the same percentage within the cardiac cycle based on ECG
signal belonging to the second X-ray image as shown in Fig. 4.
[0033] The result is shown in Fig. 5 and 6: the catheter wire of the intravascular device
is outlined on both 2D angiography images.
Step 3: 3D reconstruction of trajectory of the intravascular transducer
[0034] The 3D trajectory (hereinafter referred also as path) of the intravascular device
is reconstructed by a 3D reconstruction of the intravascular catheter wire, and starting
at the tip of the intravascular device.
[0035] The 3D reconstruction of the path can be performed by using epipolar 3D reconstruction
techniques, for example as disclosed in "
A novel dedicated 3-dimensional quantitative coronary analysis methodology for bifurcation
lesions", Yoshinobu Onuma, Chrysafios Girasis, Jean-Paul Aben, Giovanna Sarno, Nicolo
Piazza, Coen Lokkerbol, Marie-Angel Morel, Patrick W. Serruys, Eurolntervention 2011;
6:1-00.
[0036] In case the first position within the 3D reconstruction of the catheter wire does
not reflect the position of the intravascular device, an addition point within one
of the X-ray images is required to define the location of the intravascular device
within the 3D reconstruction of the intravascular catheter wire.
Step 4: Incorporate technical data of intravascular device
[0037] This step is completely optional and aims at increasing accuracy.
[0038] Intravascular imaging is typically performed with a catheter having on the tip an
imaging device, such as a transducer in case of IVUS, which absorbers X-ray radiation
and therefore is visible both on fluoroscopy and angiography. Although the device
is normally manufactured as small as possible, it still uses physical space. For example,
for an IVUS device this can be up to 10 mm. Within this space, the true imaging plane
is somewhere located. By using the technical specification provided by the intravascular
device manufacturer, the position of such plane can be determined and thus used to
increase the accuracy of the co-registration.
[0039] Two situations can be distinguished:
- Information is available on the distance to the imaging plane with respect to a position
on proximal side or distal side of the transducer as exemplified in Fig. 7.
- Information is available on the distance to the imaging plane with respect to a radiopaque
marker proximal or distal to the imaging plane as exemplified in Fig. 8.
[0040] In the first situation, the start of the 3D model is repositioned taking into account
the distance of the imaging plane.
[0041] In the second situation, the user identifies the radiopaque marker, for example by
the second node which is used for fitting the Catmull-row spline, or by indicating
this radiopaque marker by right mouse click instead of left mouse click in which the
remaining nodes are positioned. An automatic marker detection algorithm can be equally
employed as, for instance, as disclosed in
US 8,411,927. With this information, the start of the 3D model can be repositioned by using the
known distance from the technical description of the intravascular device. An example
of an IVUS device which is accompanied by such description is the one manufactured
by Volcano Corporation with the commercial name Eagle Eye@ Platinum RX Digital IVUS
Catheter.
Step 5: Perform co-registration of X-ray imaging and intravascular imaging
[0042] Since the relation to the first intravascular image has been established by the first
position within the 3D reconstruction of the intravascular catheter path, by indication
of the transducer as the first point of both 2D paths or by incorporating the technical
data of the intravascular device, co-registration between X-ray and intravascular
is automatically performed.
[0043] The co-registration can be performed after the intravascular pullback or just before
the intravascular pullback. The latter allows real time feedback of position of intravascular
image in the X-ray images during the intravascular pullback.
Step 6: Perform intravascular pullback
[0044] In intravascular imaging the pullback method consists of initially positioning the
intravascular transducer, or catheter tip, distal in a vessel of interest and pull
the catheter tip with a controlled speed to the proximal part of the vessel of interest.
During this pullback the intravascular transducer acquires intravascular images.
[0045] To match the spatial position of each intravascular image with respect to the X-ray
image information on the pull back speed during its path from distal to proximal is
required. In case of a motorized intravascular pullback, the registration is performed
by computing the frame speed and matching each intravascular frame to the length of
the 3D intravascular catheter path.
[0046] This means that for each intravascular image its length with respect to the first
intravascular frame is known and will be matched to the length obtained from the 3D
intravascular catheter path. Its position with respect to the X-ray image is indicated
by back projection of the corresponding 3D position within the 3D intravascular catheter
path.
[0047] In case of a manual intravascular pullback, the motion of the intravascular device
can be recorded to obtain information of the pullback speed during its path from distal
to proximal. This can be accomplished, for example, by measuring the longitudinal
motion of the intravascular catheter by means of a motion measurement system. Registration
between X-ray and intravascular imaging can be performed by matching each intravascular
frame, by using the recorded longitudinal motion i.e. the inter-frame distance, to
the length of the 3D intravascular catheter path starting from the distal position
of the 3D intravascular path.
[0048] Figure 9 shows an example of co-registration between IVUS and angiography. Bottom
figure illustrates a so called longitudinal image. This is a view in which all the
IVUS frames are stacked on each other and a cross section is made longitudinal. Corresponding
position of IVUS frame in longitudinal view and angiographic view are visualized by
markers. Arrow identifies the start of first IVUS frame and its position in the angiographic
image. The same can also be performed on the fluoroscopic image.
[0049] In case the intravascular imaging is performed after the 3D reconstruction of the
catheter path, the location of the intravascular transducer can be indicated real
time on the X-ray image.
[0050] After co-registration is performed the physician can accurately define length measurements
in both the X-ray angiographic image as well as in a longitudinal view of the intravascular
image data. Furthermore, detailed vessel information from the intravascular image
is accurately correlated its location in the X-ray angiographic image.
[0051] According to an improvement, the invention also provides information on the perpendicularity
of the acquired intravascular images with respect to the vessel. Since the 3D trajectory
of the intravascular transducer is known, a plane perpendicular at a position within
this 3D trajectory can be back-projected on the X-ray angiographic image allowing
the physician to view the perpendicularity of the intravascular image with respect
to the vessel. The severity of mismatch in the 2D X-ray imaging viewing direction
of perpendicularity can be visualized and/or quantified, for instance, by means of
colour coding the back-projected line. In case the intravascular image is not perpendicular
to the vessel, the cross sectional area of the vessel in IVUS and/or OCT images will
be overestimated.
[0052] Figure 10 shows an example of a visualization of a non perpendicular intravascular
imaging plane
[0053] Figure 11 shows an example of a visualization of a non perpendicular intravascular
imaging plane in case of mismatch in the 2D X-ray imaging viewing directions.
[0054] The invention has been mainly disclosed with reference to co-registration of intravascular
images and X-ray angiographic images. The skilled person would appreciate that this
teaching can be equally extended to cover co-registration of images made with any
imaging or measuring device that travels through any tubular object with images taken
from outside the object with any type of imaging modality including X-ray, MRI, SPECT,
Ultrasound or the like. For example in case of registration of IVUS images with ultrasound
images taken from outside the object as in normally echography practice, the same
apparatus can be used to reconstruct both types of images thus providing a very compact
system.
[0055] The same system could also provide the actuating commands to perform pullback at
a known speed starting at a known instant of time thus increasing manoeuvrability
and repeatability.
[0056] Further to vessels, examples of tubular objects may be the oesophagus, the intestine
or the bronchitis in the medical field, and any kind of pipe in general in the field
of non-destructive testing.
1. Method for co-registration of angiography and intravascular images, which intravascular
images are in the form of a sequence of images obtained from an intravascular imaging
device which is pulled back through a vessel the method comprising the following steps:
a) generating a three-dimensional reconstruction of the trajectory of the intravascular
device within the vessel from two or more bi-dimensional angiography images of such
vessel which have been obtained from different perspectives;
b) determining a first position of an element of the device within the 3D reconstruction
of the trajectory;
c) correlating the position of such element with a correspondent point in the reconstructed
trajectory during pull back;
d) correlating each intravascular image of the sequence with a corresponding spatial
position within at least one of the bi-dimensional angiography images.
2. Method according to claim 1, wherein step a) comprises determining the device trajectory
in at least two angiography images either automatically or manually by fitting user
indicated points.
3. Method according to claim 1 or 2, wherein angiography images are bi-dimensional X-ray
images obtained with or without contrast agents.
4. Method according to claim 3, wherein at least one angiography image is a fluoroscopic
image, i.e. it is obtained without contrast agents.
5. Method according to any preceding claim, wherein the sequence of images comprises
a first angiography image and a second angiography image, the second angiography image
being selected to match the cardiac phase of the first angiography image by means
of ECG matching.
6. Method according to any preceding claim, wherein the three-dimensional reconstruction
of the trajectory starts from a point related to the first position of the element
of the device in at least two angiography images.
7. Method according to any preceding claim, wherein step c) comprises correlating the
position of the element of the device based on intravascular frame speed/ intravascular
pullback speed and intravascular elapsed imaging time.
8. Method according to any preceding claim, wherein step c) comprises correlating the
position of the element of the device based on recorded motion during pull back.
9. Method according to any preceding claim, wherein the device has an imaging plane,
the element of the device being a marker or any position on proximal side or distal
side of the device having a known distance to such imaging plane.
10. Method according to claim 9, wherein the reconstructed trajectory has a starting point
related to the position of the imaging plane of the device before pull back.
11. Method according to claim 10, wherein the device trajectory is identified by receiving
from a user the position of a radiopaque marker as a left mouse click on a node of
a fitting Catmull-row spline, the marker being identified by a right mouse click.
12. Method according to any preceding claim, wherein a so called longitudinal image is
shown wherein the intravascular images acquired during pull back are stacked on each
other along a longitudinal line, the position of each intravascular image within the
vessel being identified by a marker on the line and a corresponding marker in the
angiography image.
13. Method according to any preceding claim, wherein the degree of perpendicularity of
the acquired intravascular images with reference to the vessel is determined by calculating
planes perpendicular to the reconstructed trajectory and back projecting such planes
on the angiography image.
14. Method according to claim 13, wherein the degree of perpendicularity is evaluated
by comparing the orientation of the planes perpendicular to the reconstructed trajectory
with corresponding planes perpendicular to the lumen boundary of the vessel on the
angiography image.
15. Method according to claim 14, wherein the orientation of the planes perpendicular
to the trajectory and to the lumen boundary are shown as markers in the form of segments
on the angiography image.
16. Method according to claim 13 to 15, wherein the degree of perpendicularity is quantified
using a colour coded representation on the angiography image.
17. A computer product directly loadable into the memory of a digital computer and comprising
software code portions for performing the method according to any of the preceding
claims when the product is run on a computer.
18. System for registering angiography and intravascular images of a vessel, comprising:
- an imaging apparatus for acquiring intravascular images of the vessel;
- means for storing and/or receiving at least two angiography images of the vessel;
- a combination device for registering the intravascular images with at least one
of the angiography images,
characterized in that
the imaging apparatus comprises an intravascular device to be deployed in the vessel
to a start of examination location for acquiring images of the vessel when pulling
back such device from such location, said pulling back being performed at a controlled
speed through a motorized pulling element, the combination device being adapted to
a) generate a three-dimensional reconstruction of the trajectory of the intravascular
device within the vessel from two or more bi-dimensional angiography images of such
vessel which have been obtained from different perspectives;
b) determine a first position of an element of the device within the 3D reconstruction
of the trajectory;
c) correlate the position of such element with a correspondent point in the reconstructed
trajectory during pull back;
d) correlate each intravascular image of the sequence with a corresponding spatial
position within at least one of the bi-dimensional angiography images.
19. System according to claim 18, wherein the combination device has an input to receive
from the intravascular device/imaging apparatus the frame speed or the intravascular
pullback speed and intravascular elapsed imaging time or recorded motion, the combination
device being adapted to read and process such input to correlate the position of the
element of the device in the reconstructed trajectory during pull back.
20. System according to claim 18 or 19, wherein the device has an imaging plane, the element
of the device being a marker or any position on proximal side or distal side of the
device having a known distance to such imaging plane.
21. System according to claim 18 to 20, wherein the reconstructed trajectory has a starting
point related to the start of examination position of the imaging device.
22. System according to claim 18 to 21, characterized in being provided in combination with an X-ray apparatus for acquiring two or more bi-dimensional
angiography images of a vessel of a patient from different perspectives.
23. System according to claim 22, wherein the X-ray apparatus is a dual arm X-ray apparatus
to acquire biplane angiography images or a single arm X-ray apparatus to acquire single
plane fluoroscopic and/or angiographic images.
24. System according to claim 22 or 23, characterized in that the combination device is adapted for performing the method according to any preceding
claim 1 to 17 to register intravascular images with at least one angiographic image.